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Nucleic Acid Collection (page 9)

Nucleic acids, the building blocks of life, are intricately woven strands of genetic information that hold the key to our existence

Background imageNucleic Acid Collection: Chromatin remodelling factor and DNA C015 / 5156

Chromatin remodelling factor and DNA C015 / 5156
Chromatin remodelling factor and DNA, molecular model. The strands of DNA (deoxyribonucleic acid) are at left and right (both red and green). This chromatin remodelling factor (purple) is ISW1a

Background imageNucleic Acid Collection: Chromatin remodelling factor and DNA C015 / 5155

Chromatin remodelling factor and DNA C015 / 5155
Chromatin remodelling factor and DNA, molecular model. The strands of DNA (deoxyribonucleic acid) are at left and right (pink-yellow and green-orange). This chromatin remodelling factor is ISW1a

Background imageNucleic Acid Collection: Resolvase enzyme complexed with DNA

Resolvase enzyme complexed with DNA, molecular model. The area at centre is a gamma-delta resolvase enzyme forming a complex with two cleaved helices of DNA (deoxyribonucleic acid)

Background imageNucleic Acid Collection: Organic peroxide resistance repressor

Organic peroxide resistance repressor
Molecular model of the organic hydroperoxide resistance repressor protein (ohrR, green) binding to a region of DNA (deoxyribonucleic acid)

Background imageNucleic Acid Collection: Transcription factor and DNA molecule C015 / 5344

Transcription factor and DNA molecule C015 / 5344
Transcription factor and DNA molecule. Molecular model of glucocorticoid receptor (GR) transcription factor protein (blue and purple) complexed with a molecule of DNA (deoxyribonucleic acid)

Background imageNucleic Acid Collection: Transcription factor and DNA molecule C015 / 5343

Transcription factor and DNA molecule C015 / 5343
Transcription factor and DNA molecule. Molecular model of glucocorticoid receptor (GR) transcription factor protein (yellow and green) complexed with a molecule of DNA (deoxyribonucleic acid)

Background imageNucleic Acid Collection: Ribozyme enzyme and RNA C016 / 2829

Ribozyme enzyme and RNA C016 / 2829
Ribozyme enzyme and RNA, molecular model. Ribozymes are RNA (ribonucleic acid) molecules that catalyse certain biochemical reactions

Background imageNucleic Acid Collection: Type II topoisomerase bound to DNA C016 / 2827

Type II topoisomerase bound to DNA C016 / 2827
Type II topoisomerase bound to DNA, Molecular model of human topoisomerase 2-alpha (blue, a form of type II topoisomerase) forming a complex with a strand of DNA (deoxyribonucleic acid)

Background imageNucleic Acid Collection: Ribozyme enzyme and RNA C016 / 2828

Ribozyme enzyme and RNA C016 / 2828
Ribozyme enzyme and RNA, molecular model. Ribozymes are RNA (ribonucleic acid) molecules that catalyse certain biochemical reactions

Background imageNucleic Acid Collection: Type II topoisomerase bound to DNA C016 / 2826

Type II topoisomerase bound to DNA C016 / 2826
Type II topoisomerase bound to DNA, Molecular model of human topoisomerase 2-alpha (blue, a form of type II topoisomerase) forming a complex with a strand of DNA (deoxyribonucleic acid)

Background imageNucleic Acid Collection: MBD4 protein binding with DNA C016 / 2825

MBD4 protein binding with DNA C016 / 2825
MBD4 protein binding with DNA, molecular model. MBD4 (methyl-binding domain 4) protein (blue) complexed with a strand of DNA (deoxyribonucleic acid, green-yellow)

Background imageNucleic Acid Collection: MBD4 protein binding with DNA C016 / 2824

MBD4 protein binding with DNA C016 / 2824
MBD4 protein binding with DNA, molecular model. MBD4 (methyl-binding domain 4) protein (blue) complexed with a strand of DNA (deoxyribonucleic acid, red-green)

Background imageNucleic Acid Collection: DNA polymerase with DNA C016 / 2684

DNA polymerase with DNA C016 / 2684
DNA polymerase with DNA. Molecular model of DNA polymerase (purple) complexed with a molecule of DNA (deoxyribonucleic acid, pink and blue)

Background imageNucleic Acid Collection: DNA polymerase with DNA C016 / 2682

DNA polymerase with DNA C016 / 2682
DNA polymerase with DNA. Molecular model of DNA polymerase (grey) complexed with a molecule of DNA (deoxyribonucleic acid, pink and orange)

Background imageNucleic Acid Collection: Retroviral intasome molecule C016 / 2577

Retroviral intasome molecule C016 / 2577
Retroviral intasome molecule. Molecular model of an intasome (grey and brown) from a retrovirus complexed with host cell DNA (deoxyribonucleic acid)

Background imageNucleic Acid Collection: Retroviral intasome molecule C016 / 2572

Retroviral intasome molecule C016 / 2572
Retroviral intasome molecule. Molecular model of an intasome (blue and mauve) from a retrovirus complexed with host cell DNA (deoxyribonucleic acid)

Background imageNucleic Acid Collection: RNA-silencing protein with RNA C016 / 2558

RNA-silencing protein with RNA C016 / 2558
RNA-silencing protein with RNA. Molecular model of RNA silencing taking place by human piwi-like protein (purple) acting on short loops (green) of RNA (ribonucleic acid)

Background imageNucleic Acid Collection: RNA-silencing protein with RNA C016 / 2557

RNA-silencing protein with RNA C016 / 2557
RNA-silencing protein with RNA. Molecular model of RNA silencing taking place by human piwi-like protein (green) acting on short loops (red) of RNA (ribonucleic acid)

Background imageNucleic Acid Collection: RNA polymerase molecule C016 / 2391

RNA polymerase molecule C016 / 2391
RNA polymerase. Molecular model of RNA polymerase (blue and purple) transcribing a strand of mRNA (messenger ribonucleic acid, centre) from a DNA (deoxyribonucleic acid) template (pink and purple)

Background imageNucleic Acid Collection: RNA polymerase molecule C016 / 2390

RNA polymerase molecule C016 / 2390
RNA polymerase. Molecular model of RNA polymerase (beige and pink) transcribing a strand of mRNA (messenger ribonucleic acid, centre) from a DNA (deoxyribonucleic acid) template (pink and purple)

Background imageNucleic Acid Collection: DNA clamp complexed with DNA molecule C016 / 2328

DNA clamp complexed with DNA molecule C016 / 2328
DNA clamp complexed with DNA molecule. Molecular model showing a sliding DNA (deoxyribonucleic acid) clamp (ring) complexed with a molecule of DNA (blue and pink)

Background imageNucleic Acid Collection: DNA clamp complexed with DNA molecule C016 / 2329

DNA clamp complexed with DNA molecule C016 / 2329
DNA clamp complexed with DNA molecule. Molecular model showing a sliding DNA (deoxyribonucleic acid) clamp (ring) complexed with a molecule of DNA (down centre)

Background imageNucleic Acid Collection: Sir3 gene silencer acting on DNA C016 / 2325

Sir3 gene silencer acting on DNA C016 / 2325
Sir3 gene silencer acting on DNA, molecular model. Sir3 (bright green) is acting on a circular strand of DNA (deoxyribonucleic acid, red and yellow)

Background imageNucleic Acid Collection: Sir3 gene silencer acting on DNA C016 / 2324

Sir3 gene silencer acting on DNA C016 / 2324
Sir3 gene silencer acting on DNA, molecular model. Sir3 (light blue) is acting on a circular strand of DNA (deoxyribonucleic acid, pink)

Background imageNucleic Acid Collection: Damaged DNA, conceptual artwork C013 / 9999

Damaged DNA, conceptual artwork C013 / 9999
Damaged DNA, conceptual computer artwork

Background imageNucleic Acid Collection: Caduceus with DNA, artwork C013 / 9989

Caduceus with DNA, artwork C013 / 9989
Caduceus with DNA. Computer artwork of the Caduceus symbol entwined by a strand of DNA (deoxyribonucleic acid). The caduceus is the traditional symbol of the Greek god Hermes

Background imageNucleic Acid Collection: DNA molecule, artwork C013 / 9977

DNA molecule, artwork C013 / 9977
DNA molecule. Computer artwork showing a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageNucleic Acid Collection: DNA molecule, artwork C013 / 9976

DNA molecule, artwork C013 / 9976
DNA molecule. Computer artwork showing a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageNucleic Acid Collection: DNA molecule, artwork C013 / 9975

DNA molecule, artwork C013 / 9975
DNA molecule. Computer artwork showing a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageNucleic Acid Collection: DNA molecule, artwork C013 / 9974

DNA molecule, artwork C013 / 9974
DNA molecule. Computer artwork showing a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageNucleic Acid Collection: DNA molecule, artwork C013 / 9972

DNA molecule, artwork C013 / 9972
DNA molecule. Computer artwork showing a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageNucleic Acid Collection: DNA molecule, artwork C013 / 9973

DNA molecule, artwork C013 / 9973
DNA molecule. Computer artwork showing a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageNucleic Acid Collection: DNA molecule, artwork C013 / 9971

DNA molecule, artwork C013 / 9971
DNA molecule. Computer artwork showing a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageNucleic Acid Collection: Ribonuclease with RNA DNA hybrid

Ribonuclease with RNA DNA hybrid
Ribonuclease with RNA/DNA hybrid. Molecular model of Ribonuclease H (RNAse H, yellow and green) complexed with an RNA (ribonucleic acid, purple) and DNA (deoxyribonucleic acid, pink) hybrid

Background imageNucleic Acid Collection: RNA polymerase molecule C013 / 9005

RNA polymerase molecule C013 / 9005
RNA polymerase. Molecular model of RNA polymerase (yellow) transcribing a strand of mRNA (messenger ribonucleic acid, pink) from a DNA (deoxyribonucleic acid) template (orange and turquoise)



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Nucleic acids, the building blocks of life, are intricately woven strands of genetic information that hold the key to our existence. In this captivating journey into their world, we explore the wonders they unveil. A mesmerizing sight awaits as we gaze upon a double-stranded RNA molecule, its elegant structure resembling a delicate dance of intertwined ribbons. Next, a computer model unveils the intricate beauty of a DNA molecule, showcasing its unique helical shape and revealing the blueprint for life itself. Moving deeper into this microscopic realm, we encounter a DNA nucleosome in all its glory - a molecular masterpiece where DNA elegantly wraps around histone proteins like an artistic sculpture. An artwork depicting another DNA molecule captures our imagination with vibrant colors and abstract patterns that symbolize the complexity hidden within. Zinc fingers bound to a DNA strand create an enchanting spectacle as they delicately interact with each other like tiny keys unlocking genetic secrets. The iconic image of the DNA Double Helix with Autoradiograph reminds us of Rosalind Franklin's pioneering work in unraveling nature's code. Diving further into this fascinating world, we come across Z-DNA tetramer molecules standing tall like architectural marvels - their distinct zigzag pattern hinting at alternative possibilities within our genetic makeup. A molecular model showcases an RNA-editing enzyme poised for action; it is through these enzymes that our genes can be fine-tuned and modified. The journey continues with yet another glimpse at the awe-inspiring simplicity and complexity coexisting within a single DNA molecule. Ribonuclease gracefully interacts with an RNA/DNA hybrid - highlighting how these molecules intertwine to carry out essential cellular functions. Intriguingly conceptualized artistry takes center stage as creation unfolds before our eyes - reminding us that they are not just passive observers but active participants in shaping life's tapestry. Finally, an illustration encapsulates the essence of nucleic acid, capturing the essence of their importance in a single image.